Purpose A new rotating coil measurement system based on the coordinate measurement machine(CMM)is developed for measuring high-gradient small-aperture quadrupole magnet in the Test Facility of High Energy Photon Sourc...Purpose A new rotating coil measurement system based on the coordinate measurement machine(CMM)is developed for measuring high-gradient small-aperture quadrupole magnet in the Test Facility of High Energy Photon Source(HEPS-TF).Methods The CMMand two groups of Newport translate stages are combined to align the rotating coil relative to the magnet mechanical center.A high precision ceramic skeleton with bucked coil is made as a measurement sensor.The integrated field gradient,harmonics,magnetic center offset and excitation curve of a high-gradient small-aperture quadrupole prototype magnet are measured.Results The rotating coil is aligned to the magnet mechanical center within 10μm.The reproducibility of higher harmonics is within 0.2×10–4.The repeatability of the magnet center in horizontal direction is under 1.5μm,while that in vertical direction is less than 2.5μm in different days.The architecture of the measurement system,the measuring procedure and some primary results of the quadrupole prototype magnet are illustrated in this paper.Conclusion A rotating coil measurement system based on CMM has been well developed,and the collimation efficiency and precision are improved.The harmonic changes caused by iron fingers are measured by the measurement system.The difference between the measurement result and the OPERA-3D simulation result is less than 0.5×10–4.The performance of this measurement system can meet the magnet measurement requirements of HEPS-TF.展开更多
故障预测及健康管理(prognostics and health management,PHM)对于保障系统的安全可靠具有重要作用。随着电力电子装置在各领域的应用愈发广泛,急需研究电力电子装置的PHM技术。特征参数提取是PHM技术的基础,该文首先简要说明了电力电...故障预测及健康管理(prognostics and health management,PHM)对于保障系统的安全可靠具有重要作用。随着电力电子装置在各领域的应用愈发广泛,急需研究电力电子装置的PHM技术。特征参数提取是PHM技术的基础,该文首先简要说明了电力电子电路特征参数提取的研究现状。然后针对基于混杂系统模型的电力电子电路参数辨识方法中,存在较多影响实际辨识精度的非理想因素这一关键问题,以电路中目标器件为建模对象建立线性模型,提出了一种通用性较好的Buck型变换器参数提取方法,并结合Matlab仿真分析了该方法的性能,包括收敛速度以及辨识精度。最后进行实验验证,实验结果表明,该方法的参数辨识精度可达95%以上,验证了这一方法的有效性。展开更多
为借助仿真加快BUCK电路调试进度。对BUCK电路进行了建模仿真,根据仿真与量测的比对结果及电流反馈理论,对电容及电感等效模型进行了修正,修正后的BUCK电路仿真结果可以实现与量测结果的良好匹配。根据环路补偿理论,对TypeⅡ环路补偿设...为借助仿真加快BUCK电路调试进度。对BUCK电路进行了建模仿真,根据仿真与量测的比对结果及电流反馈理论,对电容及电感等效模型进行了修正,修正后的BUCK电路仿真结果可以实现与量测结果的良好匹配。根据环路补偿理论,对TypeⅡ环路补偿设计进行参数扫描仿真分析,找出了Transient设计最优解以满足BUCK电路设计要求。通过比对优化后的仿真与量测结果,其Peak-Peak电压差值为7 m V,验证了此仿真调试方法的正确性和有效性。展开更多
文摘Purpose A new rotating coil measurement system based on the coordinate measurement machine(CMM)is developed for measuring high-gradient small-aperture quadrupole magnet in the Test Facility of High Energy Photon Source(HEPS-TF).Methods The CMMand two groups of Newport translate stages are combined to align the rotating coil relative to the magnet mechanical center.A high precision ceramic skeleton with bucked coil is made as a measurement sensor.The integrated field gradient,harmonics,magnetic center offset and excitation curve of a high-gradient small-aperture quadrupole prototype magnet are measured.Results The rotating coil is aligned to the magnet mechanical center within 10μm.The reproducibility of higher harmonics is within 0.2×10–4.The repeatability of the magnet center in horizontal direction is under 1.5μm,while that in vertical direction is less than 2.5μm in different days.The architecture of the measurement system,the measuring procedure and some primary results of the quadrupole prototype magnet are illustrated in this paper.Conclusion A rotating coil measurement system based on CMM has been well developed,and the collimation efficiency and precision are improved.The harmonic changes caused by iron fingers are measured by the measurement system.The difference between the measurement result and the OPERA-3D simulation result is less than 0.5×10–4.The performance of this measurement system can meet the magnet measurement requirements of HEPS-TF.
文摘故障预测及健康管理(prognostics and health management,PHM)对于保障系统的安全可靠具有重要作用。随着电力电子装置在各领域的应用愈发广泛,急需研究电力电子装置的PHM技术。特征参数提取是PHM技术的基础,该文首先简要说明了电力电子电路特征参数提取的研究现状。然后针对基于混杂系统模型的电力电子电路参数辨识方法中,存在较多影响实际辨识精度的非理想因素这一关键问题,以电路中目标器件为建模对象建立线性模型,提出了一种通用性较好的Buck型变换器参数提取方法,并结合Matlab仿真分析了该方法的性能,包括收敛速度以及辨识精度。最后进行实验验证,实验结果表明,该方法的参数辨识精度可达95%以上,验证了这一方法的有效性。
文摘为借助仿真加快BUCK电路调试进度。对BUCK电路进行了建模仿真,根据仿真与量测的比对结果及电流反馈理论,对电容及电感等效模型进行了修正,修正后的BUCK电路仿真结果可以实现与量测结果的良好匹配。根据环路补偿理论,对TypeⅡ环路补偿设计进行参数扫描仿真分析,找出了Transient设计最优解以满足BUCK电路设计要求。通过比对优化后的仿真与量测结果,其Peak-Peak电压差值为7 m V,验证了此仿真调试方法的正确性和有效性。